Intelligent mineral exploration physical detector
By designing an arc-shaped connecting frame and protective plate structure on the detector, the problem of damage to the detection end caused by hand fatigue is solved, effectively protecting the detector and adapting it to various exploration environments.
Patent Information
- Application Number
- CN202520636874.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-04-07
AI Technical Summary
Traditional mineral exploration detectors are prone to damage to the probe end due to hand fatigue and unstable grip during prolonged use, lacking an effective protective mechanism.
An intelligent mineral exploration physical detector was designed, which adopts an arc-shaped connecting frame and an arc-shaped protective plate structure. The arc-shaped protective plate has a height difference with the detection disk and contacts the ground first to protect the detection disk. The arc-shaped connecting frame forms a ring protection and is equipped with a buffer component to provide additional protection.
It effectively prevents the probe from falling or being bumped, improving the protection of the probe, reducing equipment damage, and adapting to the needs of different exploration environments.
Smart Images

Figure CN223941119U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mineral exploration equipment technology, and in particular to an intelligent mineral exploration physical detector. Background Technology
[0002] In the field of mineral exploration, detectors are key equipment for obtaining mineral resource information. Taking the common AR924 detector as an example, traditional detectors of this type have shortcomings in actual use.
[0003] Firstly, mineral exploration work usually requires workers to hold the detector for extended periods. Due to the long working hours and heavy workload, workers' hands are easily fatigued. In this situation, because of the long-term holding and the lack of protection for the detection end of traditional detectors, once the hand becomes tired and the grip becomes unstable, the detection end may fall directly to the ground, which may damage the detector's casing. Therefore, in order to improve the protection of the detection end's casing, this device is designed as a mineral exploration physical detector with a protective mechanism. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing an intelligent physical detector for mineral exploration.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A smart mineral exploration physical detection instrument, comprising:
[0007] The detector itself;
[0008] The detector body is rotatably connected to the detector disk at its bottom end;
[0009] An arc-shaped connecting frame; the arc-shaped connecting frame is installed on the outside of the detection disk;
[0010] An arc-shaped protective plate; the arc-shaped protective plate is located below the arc-shaped connecting frame;
[0011] There is a height difference between the arc-shaped protective plate and the detection disk. When the detection disk falls, the arc-shaped protective plate will be the first to contact the ground.
[0012] The above technical solution further includes: multiple arc-shaped connecting frames are provided, and the multiple arc-shaped connecting frames are arranged in a ring around the outside of the detection disk.
[0013] Furthermore, the arc-shaped protective plate is provided with an adjustment component, which is used to adjust the height of the arc-shaped protective plate. The adjustment component includes a longitudinal connecting rod fixedly installed on the outer wall of the arc-shaped protective plate. A through hole is opened on the outer wall of the arc-shaped connecting frame. The outer wall of the longitudinal connecting rod is slidably connected to the inner wall of the through hole. A fixing component is provided on the side wall of the arc-shaped connecting frame, which is used to fix the longitudinal connecting rod.
[0014] Furthermore, the fixing assembly includes a sleeve b fixedly installed on the side wall of the arc-shaped connecting frame. The sleeve b communicates with the interior of the through hole. A pull rod is slidably connected to the inner wall of the sleeve b. One end of the pull rod is fixedly connected to a pin. The end of the pull rod away from the pin extends movably through the end wall of the sleeve b and to the outside of the sleeve b. Multiple insertion holes are provided on the outer wall of the longitudinal connecting rod. The pin is movably inserted into the interior of one of the insertion holes. A spring b is sleeved on the outside of the pull rod. One end of the spring b is fixedly connected to the outer wall of the pull rod. The end of the spring b away from the pull rod is fixedly connected to the inner wall of the sleeve b.
[0015] Furthermore, a buffer assembly is provided between the arc-shaped connecting frame and the detection disk. The buffer assembly includes a sleeve a fixedly connected to the side wall of the detection disk, a buffer rod fixedly connected to the side wall of the arc-shaped connecting frame, and one end of the buffer rod away from the arc-shaped connecting frame slidably connected to the inner wall of the sleeve a. A spring a is fixedly installed on the inner end wall of the sleeve a, and one end of the spring a away from the inner wall of the sleeve a is fixedly connected to the end wall of the buffer rod.
[0016] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0017] 1. In this utility model, a limiting mechanism is provided. The arc-shaped protective plate in the limiting mechanism can limit the position of the detection plate. That is, when the detection plate falls, the arc-shaped protective plate will contact the ground first, thereby preventing the detection plate from falling directly to the ground and improving the protection of the detection plate.
[0018] 2. In this utility model, an arc-shaped connecting frame is provided. Multiple arc-shaped connecting frames form a ring-shaped protection around the outer periphery of the detection plate to prevent the detection plate from being bumped. When the arc-shaped connecting frame is bumped, it can be cushioned by the buffer component connected to the arc-shaped connecting frame, thereby providing effective protection for the detection plate during detection. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of an intelligent mineral exploration physical detection instrument proposed in this utility model.
[0020] Figure 2This is a cross-sectional structural schematic diagram of an intelligent mineral exploration physical detection instrument proposed in this utility model;
[0021] Figure 3 for Figure 1 Enlarged structural diagram at point A;
[0022] Figure 4 for Figure 2 Enlarged structural diagram at point B;
[0023] Figure 5 for Figure 4 A magnified structural diagram at point C.
[0024] In the picture:
[0025] 10. Detector body; 20. Detector plate; 30. Arc-shaped connecting frame; 31. Sleeve a; 32. Buffer rod; 33. Spring a; 40. Arc-shaped protective plate; 41. Longitudinal connecting rod; 42. Through hole; 50. Sleeve b; 51. Pull rod; 52. Insert post; 53. Insertion hole; 54. Spring b. Detailed Implementation
[0026] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.
[0027] Example 1
[0028] See attached document Figure 1-5 ,include:
[0029] Detector body 10;
[0030] The bottom end of the detector body 10 is rotatably connected to the detector disk 20;
[0031] Arc-shaped connecting frame 30; Arc-shaped connecting frame 30 is installed on the outside of the detection plate 20;
[0032] Arc-shaped protective plate 40; Arc-shaped protective plate 40 is located below arc-shaped connecting frame 30;
[0033] There is a height difference between the arc-shaped protective plate 40 and the detection plate 20. When the detection plate 20 falls, the arc-shaped protective plate 40 will be the first to contact the ground.
[0034] Multiple arc-shaped connecting frames 30 are provided, and the multiple arc-shaped connecting frames 30 are arranged in a ring around the outside of the detection disk 20.
[0035] An adjustment assembly is provided on the arc-shaped protective plate 40. The adjustment assembly is used to adjust the height of the arc-shaped protective plate 40. The adjustment assembly includes a longitudinal connecting rod 41 fixedly installed on the outer wall of the arc-shaped protective plate 40. A through hole 42 is opened on the outer wall of the arc-shaped connecting frame 30. The outer wall of the longitudinal connecting rod 41 is slidably connected to the inner wall of the through hole 42. A fixing assembly is provided on the side wall of the arc-shaped connecting frame 30. The fixing assembly is used to fix the longitudinal connecting rod 41. Here, the height position of the arc-shaped protective plate 40 can be adjusted. When adjusting, the fixing assembly can be released from fixing the longitudinal connecting rod 41 first, and then the position of the longitudinal connecting rod 41 in the through hole 42 can be adjusted, thereby adjusting the position of the arc-shaped protective plate 40.
[0036] The fixing assembly includes a sleeve b50 fixedly installed on the side wall of the arc-shaped connecting frame 30. The sleeve b50 communicates with the interior of the through hole 42. A pull rod 51 is slidably connected to the inner wall of the sleeve b50. One end of the pull rod 51 is fixedly connected to a pin 52. The end of the pull rod 51 away from the pin 52 extends movably through the end wall of the sleeve b50 and to the outside of the sleeve b50. Multiple insertion holes 53 are provided on the outer wall of the longitudinal connecting rod 41. The pin 52 is movably inserted into the interior of one of the insertion holes 53. A spring b54 is sleeved on the outside of the pull rod 51. One end of the spring b54 is fixed. The spring b54, connected to the outer wall of the pull rod 51, is fixedly connected to the inner wall of the sleeve b50 at one end away from the pull rod 51. When the fixing assembly is released from fixing the longitudinal connecting rod 41, the pull rod 51 can be pulled, and the pull rod 51 drives the insertion post 52 to move, so that the insertion post 52 moves out of the insertion hole 53, thereby releasing the fixing of the insertion post 52 to the insertion hole 53. In addition, when the insertion post 52 is inserted into the insertion hole 53, the spring b54 is sleeved on the outside of the pull rod 51, and the elastic force of the spring b54 can improve the stability of the insertion post 52 pressing against the insertion hole 53.
[0037] A buffer assembly is provided between the arc-shaped connecting frame 30 and the detection disk 20. The buffer assembly includes a sleeve a31 fixedly connected to the side wall of the detection disk 20, a buffer rod 32 fixedly connected to the side wall of the arc-shaped connecting frame 30, and the end of the buffer rod 32 away from the arc-shaped connecting frame 30 slidably connected to the inner wall of the sleeve a31. A spring a33 is fixedly installed on the inner end wall of the sleeve a31, and the end of the spring a33 away from the inner wall of the sleeve a31 is fixedly connected to the end wall of the buffer rod 32. The buffer assembly can provide buffering for the detection disk 20 in case of lateral collision. That is, when the user holds the detector body 10 and swings the detection disk 20 left and right, if the device collides with an obstacle, the obstacle will hit the arc-shaped connecting frame 30. The arc-shaped connecting frame 30 will drive the buffer rod 32 to slide on the inner wall of the sleeve a31, and the spring a33 will provide buffering for the buffer rod 32, thereby providing buffer protection for the detection disk 20.
[0038] In this embodiment, the working principle of the device is as follows: when carrying out mineral exploration operations, the staff holds the detector body 10 and the detection disk 20 to detect mineral resources.
[0039] When the detector may fall due to hand fatigue caused by prolonged work, the arc-shaped protective plate 40 will make contact with the ground first because of the height difference between the arc-shaped protective plate 40 and the detector plate 20, thus preventing the detector plate 20 from falling directly to the ground and protecting the detector plate 20 from being damaged or scratched.
[0040] Multiple arc-shaped connecting frames 30 are arranged in a ring around the outside of the detection disk 20. When the detection disk 20 is hit from the side, the arc-shaped connecting frames 30 can act as a barrier. In addition, the buffer component set between the arc-shaped connecting frames 30 and the detection disk 20 will play a role. For example, when the device collides with an obstacle, the obstacle hits the arc-shaped connecting frame 30, and the arc-shaped connecting frame 30 drives the buffer rod 32 to slide in the sleeve a31. The spring a33 is compressed and undergoes elastic deformation, converting the impact force generated by the collision into the elastic potential energy of the spring, thereby providing buffer protection for the detection disk 20 in the event of a lateral collision.
[0041] If the height of the arc-shaped protective plate 40 needs to be adjusted to adapt to different exploration environments or requirements, the fixing components can be operated: pull the pull rod 51 to move the insert 52 out of the insertion hole 53 on the outer wall of the longitudinal connecting rod 41, thereby releasing the fixation of the longitudinal connecting rod 41. At this time, the longitudinal connecting rod 41 can be slid along the through hole 42 to adjust the height of the arc-shaped protective plate 40. After the adjustment is completed, release the pull rod 51. Under the elastic force of the spring b54, the insert 52 will be reinserted into the corresponding insertion hole 53, fixing the arc-shaped protective plate 40 at a suitable height.
[0042] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. An intelligent physical detection instrument for mineral exploration, characterized in that, include: The detector body (10); The detector disk (20) is rotatably connected to the bottom end of the detector body (10); Arc-shaped connecting frame (30); the arc-shaped connecting frame (30) is installed on the outside of the detection disk (20); Arc-shaped protective plate (40); the arc-shaped protective plate (40) is located below the arc-shaped connecting frame (30); There is a height difference between the arc-shaped protective plate (40) and the detection disk (20). When the detection disk (20) falls, the arc-shaped protective plate (40) will be the first to contact the ground.
2. The intelligent mineral exploration physical detection instrument according to claim 1, characterized in that, Multiple arc-shaped connecting frames (30) are provided, and the multiple arc-shaped connecting frames (30) are arranged in a ring around the outside of the detection disk (20).
3. The intelligent mineral exploration physical detection instrument according to claim 2, characterized in that, An adjustment component is provided on the arc-shaped protective plate (40). The adjustment component is used to adjust the height of the arc-shaped protective plate (40). The adjustment component includes a longitudinal connecting rod (41) fixedly installed on the outer wall of the arc-shaped protective plate (40). A through hole (42) is provided on the outer wall of the arc-shaped connecting frame (30). The outer wall of the longitudinal connecting rod (41) is slidably connected to the inner wall of the through hole (42). A fixing component is provided on the side wall of the arc-shaped connecting frame (30). The fixing component is used to fix the longitudinal connecting rod (41).
4. The intelligent mineral exploration physical detection instrument according to claim 3, characterized in that, The fixing assembly includes a sleeve b (50) fixedly installed on the side wall of the arc-shaped connecting frame (30). The sleeve b (50) is connected to the inside of the through hole (42). A pull rod (51) is slidably connected to the inner wall of the sleeve b (50). One end of the pull rod (51) is fixedly connected to a pin (52). The end of the pull rod (51) away from the pin (52) extends from the end wall of the sleeve b (50) through and to the outside of the sleeve b (50). A plurality of insertion holes (53) are provided on the outer wall of the longitudinal connecting rod (41). The pin (52) is movably inserted into the inside of one of the insertion holes (53). A spring b (54) is sleeved on the outside of the pull rod (51). One end of the spring b (54) is fixedly connected to the outer wall of the pull rod (51). The end of the spring b (54) away from the pull rod (51) is fixedly connected to the inner wall of the sleeve b (50).
5. The intelligent mineral exploration physical detection instrument according to claim 4, characterized in that, A buffer assembly is provided between the arc-shaped connecting frame (30) and the probe disk (20). The buffer assembly includes a sleeve a (31) fixedly connected to the side wall of the probe disk (20). A buffer rod (32) is fixedly connected to the side wall of the arc-shaped connecting frame (30). The end of the buffer rod (32) away from the arc-shaped connecting frame (30) is slidably connected to the inner wall of the sleeve a (31). A spring a (33) is fixedly installed on the inner end wall of the sleeve a (31). The end of the spring a (33) away from the inner wall of the sleeve a (31) is fixedly connected to the end wall of the buffer rod (32).